Investigation on process parameters of electrospinning system through orthogonal experimental design

被引:275
作者
Cui, Wenguo [1 ]
Li, Xiaohong [1 ]
Zhou, Shaobing [1 ]
Weng, Jie [1 ]
机构
[1] SW Jiaotong Univ, Sch Mat Sci & Engn, Key Lab Adv Technol Mat, Chengdu 610031, Peoples R China
关键词
fiber; nanotechnology; processing; thermal properties; morphology;
D O I
10.1002/app.25464
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Electrospinning is a very simple and versatile method of creating polymer-based high-functional and high-performance nanofibers. But most of the investigations are not systematic and describe the electrospinning process without quantitative accuracy. Inconsistent and even opposite results have been reported, which has hindered the consistent interpretation of the experiments. Orthogonal experimental method was used to investigate qualitative and quantitative correlations between fiber characteristics (diameters and morphologies) and the processing and materials parameters. Uniform fibers can be obtained without any beads by proper selection of the processing parameters, and a lower glass transition temperature was observed for electrospun fibers than that of native polymer. Results of statistical analysis showed that significant influences were observed for polymer molecular weight and solution concentration on fiber diameters, and there were significant effects of polymer molecular weight, solution concentration, and solvent system on fiber morphologies. Meanwhile, solution concentration and polymer molecular weight, and polymer molecular weight and solvent system had obvious interaction effects. Regression analysis revealed quantitative relations of fiber diameters and beads percent, that is, Y-1 = 72.8X(1) - 8.1X(2) + 138.8, Y-2 = -3.2X(1) + 0.4X(2) + 60.5, where Y-1 is fiber diameter (nm), Y-2 beads percent X, solution concentration (%, w/w), and X-2 polymer molecular weight (kDa). Validation test showed that the experimental values of fiber size and beads percent were in good agreement with the calculated ones. Based on these results, optimal conditions could be obtained for predetermined diameters and morphologies for electrospun fibers. (c) 2006 Wiley Periodicals, Inc.
引用
收藏
页码:3105 / 3112
页数:8
相关论文
共 17 条
[1]   Processing and microstructural characterization of porous biocompatible protein polymer thin films [J].
Buchko, CJ ;
Chen, LC ;
Shen, Y ;
Martin, DC .
POLYMER, 1999, 40 (26) :7397-7407
[2]   Controlled deposition of electrospun poly(ethylene oxide) fibers [J].
Deitzel, JM ;
Kleinmeyer, JD ;
Hirvonen, JK ;
Tan, NCB .
POLYMER, 2001, 42 (19) :8163-8170
[3]   Electrospinning of polyurethane fibers [J].
Demir, MM ;
Yilgor, I ;
Yilgor, E ;
Erman, B .
POLYMER, 2002, 43 (11) :3303-3309
[4]  
FAN DY, 1996, PROBABILITY THEORY M, P215
[5]   Beaded nanofibers formed during electrospinning [J].
Fong, H ;
Chun, I ;
Reneker, DH .
POLYMER, 1999, 40 (16) :4585-4592
[6]   Polymer nanofibers assembled by electrospinning [J].
Frenot, A ;
Chronakis, IS .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2003, 8 (01) :64-75
[7]   Biodegradable nanoparticles for drug delivery and targeting [J].
Hans, ML ;
Lowman, AM .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2002, 6 (04) :319-327
[8]   A review on polymer nanofibers by electrospinning and their applications in nanocomposites [J].
Huang, ZM ;
Zhang, YZ ;
Kotaki, M ;
Ramakrishna, S .
COMPOSITES SCIENCE AND TECHNOLOGY, 2003, 63 (15) :2223-2253
[9]   Influence of copolymer composition of polylactide implants on cranial bone regeneration [J].
Leiggener, CS ;
Curtis, R ;
Müller, AA ;
Pfluger, D ;
Gogolewski, S ;
Rahn, BA .
BIOMATERIALS, 2006, 27 (02) :202-207
[10]   Electrospun protein fibers as matrices for tissue engineering [J].
Li, MY ;
Mondrinos, MJ ;
Gandhi, MR ;
Ko, FK ;
Weiss, AS ;
Lelkes, PI .
BIOMATERIALS, 2005, 26 (30) :5999-6008